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Updated: Jun 10, 2026

Electroconvulsive Seizures in Rats and Fractionation of Their Hippocampi to Examine Seizure-induced Changes in Postsynaptic Density Proteins
Published on: August 15, 2017
Long-lasting modulation of synaptic plasticity in rat hippocampus after early-life complex febrile seizures
Robbert G E Notenboom1, Geert M J Ramakers, Amer Kamal
1Rudolf Magnus Institute of Neuroscience, Department of Neuroscience & Pharmacology, University Medical Center Utrecht, Utrecht, The Netherlands. r.g.e.notenboom@lumc.nl
Insights
Febrile seizures in young rats can alter hippocampal plasticity, enhancing long-term potentiation and mossy fiber sprouting. However, these changes did not impact spatial learning and memory in adulthood.
Area of Science:
- Neuroscience
- Developmental Neuroscience
- Epilepsy Research
Background:
- Febrile seizures can lead to cognitive impairments in a subset of children.
- Studies suggest prolonged febrile seizures in early life may cause lasting hippocampal damage and cognitive deficits.
- Conflicting data exists regarding network plasticity and the specific cognitive deficits following febrile seizures.
Purpose of the Study:
- To investigate long-term effects of experimental febrile seizures on hippocampal plasticity in adult rats.
- To assess activity-dependent synaptic plasticity (LTP/LTD), spatial learning/memory, and mossy fiber plasticity.
- To correlate these changes with potential cognitive deficits.
Main Methods:
- Electrophysiological recordings (field excitatory potentials) in hippocampal slices to measure long-term potentiation (LTP) and long-term depression (LTD).
- Morris water maze task to evaluate spatial learning and memory.
- Timm histochemistry to quantify mossy fiber terminal sprouting in the CA3 and dentate gyrus.
Main Results:
- Adult rats with a history of experimental febrile seizures exhibited enhanced CA1 LTP and reduced LTD.
- Spatial learning and memory, assessed via the Morris water maze, remained normal.
- Significant mossy fiber collateral sprouting into the dentate gyrus was observed in adulthood.
Conclusions:
- Experimental febrile seizures induce long-term functional (enhanced LTP) and structural (mossy fiber sprouting) alterations in the hippocampus.
- These hippocampal plasticity changes occur without overt deficits in spatial learning and memory.
- The observed plasticity alterations may contribute to increased seizure susceptibility but not necessarily cognitive impairment.
Abstract:
A small fraction of children with febrile seizures appears to develop cognitive impairments. Recent studies in a rat model of hyperthermia-induced febrile seizures indicate that prolonged febrile seizures early in life have long-lasting effects on the hippocampus and induce cognitive deficits. However, data on network plasticity and the nature of cognitive deficits are conflicting. We examined three specific measures of hippocampal plasticity in adult rats with a prior history of experimental febrile seizures: (i) activity-dependent synaptic plasticity (long-term potentiation and depression) by electrophysiological recordings of Schaffer collateral/commissural-evoked field excitatory synaptic potentials in CA1 of acute hippocampal slices; (ii) Morris water maze spatial learning and memory; and (iii) hippocampal mossy fiber plasticity by Timm histochemistry and quantification of terminal sprouting in CA3 and the dentate gyrus. We found enhanced hippocampal CA1 long-term potentiation and reduced long-term depression but normal spatial learning and memory in adult rats that were subjected to experimental febrile seizures on postnatal day 10. Furthermore, rats with experimental febrile seizures showed modest but significant sprouting of mossy fiber collaterals into the inner molecular layer of the dentate gyrus in adulthood. We conclude that enhanced CA1 long-term potentiation and mild mossy fiber sprouting occur after experimental febrile seizures, without affecting spatial learning and memory in the Morris water maze. These long-term functional and structural alterations in hippocampal plasticity are likely to play a role in the enhanced seizure susceptibility in this model of prolonged human febrile seizures but do not correlate with overt cognitive deficits.
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